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Updated: May 28, 2026

Ferric Chloride-induced Murine Thrombosis Models
Published on: September 5, 2016
An Iron-Complement Network Model of Thromboinflammation and Humoral Immune Remodeling in Severe COVID-19
Zhen Chen1, Shanshan Wang1,2, Yuzong Chen1,2
1Institute of Drug Discovery Technology, Ningbo University, Ningbo 315211, China.
Insights
Severe COVID-19 involves complex immune and clotting system issues. This study reveals interconnected changes in complement, coagulation, and iron regulation, highlighting C9, LBP, and TFRC as key molecular players.
Area of Science:
- Immunology
- Systems Biology
- Proteomics
Background:
- Severe COVID-19 presents with significant thromboinflammatory and immune dysregulation.
- The intricate relationships between complement-coagulation pathways, immune cell changes, and iron metabolism in severe COVID-19 are not fully understood.
Purpose of the Study:
- To investigate the network-level interactions between complement-coagulation systems, humoral immunity, and iron regulation in severe COVID-19.
- To identify key molecular players involved in these complex interactions using integrative omics analyses.
Main Methods:
- Integrative proteomic and transcriptomic analyses were performed on peripheral blood and lung tissues.
- Weighted Gene Co-expression Network Analysis (WGCNA) and differential network analysis (DiNA) were employed.
- Immune deconvolution using CIBERSORTx was utilized to assess immune cell composition.
Main Results:
- Proteomic analysis identified a module associated with complement activation, coagulation, and inflammation, with C9 and LBP as significant hub proteins.
- Transcriptomic and immune deconvolution revealed altered immune cell populations, particularly B cells and plasma cells.
- Transferrin receptor (TFRC) showed cell-type-specific expression changes in B cells and plasma cells, linking iron regulation to humoral immune remodeling.
Conclusions:
- Severe COVID-19 is characterized by coordinated dysregulation of complement-coagulation pathways and humoral immunity.
- Iron-associated immune alterations, indicated by TFRC expression, are linked to humoral immune changes.
- TFRC, C9, and LBP are proposed as potential molecular biomarkers for severe COVID-19 requiring further validation.
Abstract:
Severe COVID-19 is characterized by profound thromboinflammatory and immune disturbances, but the network-level relationships among complement-coagulation dysregulation, humoral immune remodeling, and iron-associated immune regulation remain incompletely understood. Here, we performed integrative proteomic and transcriptomic analyses across peripheral blood and lung microenvironments using weighted gene co-expression network analysis (WGCNA), differential network analysis (DiNA), and immune deconvolution. Proteomic network analysis identified a disease-associated module enriched in complement activation, coagulation cascades, platelet degranulation, and acute inflammatory responses. Hub proteins, including C9, LBP, vWF, and F11, were prioritized based on module association and intramodular connectivity. Notably, C9 and LBP were repeatedly identified across WGCNA, DiNA, and differential expression analyses, underscoring their robust association with severe COVID-19-associated molecular network remodeling. Transcriptomic and CIBERSORTx-based immune deconvolution analyses showed altered immune-cell composition in blood and lung tissues, including B-cell and plasma-cell-associated changes. Notably, TFRC displayed cell-type-associated expression changes in naïve B cells and plasma cells, suggesting a potential link between iron-associated immune regulation and humoral immune remodeling. Collectively, these computational findings highlight coordinated complement-coagulation dysregulation, humoral immune remodeling, and TFRC-associated iron-related immune alterations in severe COVID-19, and prioritize TFRC, C9, and LBP as candidate molecular indicators requiring further experimental and clinical validation.
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